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US Patent 10068557 Generating music with deep neural networks

Patent 10068557 was granted and assigned to Google on September, 2018 by the United States Patent and Trademark Office.

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Is a
Patent
Patent

Patent attributes

Patent Applicant
Google
Google
Current Assignee
Google
Google
Patent Jurisdiction
United States Patent and Trademark Office
United States Patent and Trademark Office
Patent Number
10068557
Date of Patent
September 4, 2018
Patent Application Number
15684537
Date Filed
August 23, 2017
Patent Citations Received
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US Patent 12112521 Room acoustics simulation using deep learning image analysis
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0
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US Patent 12067969 Variational embedding capacity in expressive end-to-end speech synthesis
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US Patent 11508394 Device and method for wirelessly communicating on basis of neural network model
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US Patent 10540578 Adapting a generative adversarial network to new data sources for image classification
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US Patent 10592779 Generative adversarial network medical image generation for training of a classifier
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US Patent 10635409 System and method for improving software code quality using artificial intelligence techniques
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US Patent 11545163 Method and device for determining loss function for audio signal
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Patent Primary Examiner
‌
David Warren
Patent abstract

The present disclosure provides systems and methods that include or otherwise leverage a machine-learned neural synthesizer model. Unlike a traditional synthesizer which generates audio from hand-designed components like oscillators and wavetables, the neural synthesizer model can use deep neural networks to generate sounds at the level of individual samples. Learning directly from data, the neural synthesizer model can provide intuitive control over timbre and dynamics and enable exploration of new sounds that would be difficult or impossible to produce with a hand-tuned synthesizer. As one example, the neural synthesizer model can be a neural synthesis autoencoder that includes an encoder model that learns embeddings descriptive of musical characteristics and an autoregressive decoder model that is conditioned on the embedding to autoregressively generate musical waveforms that have the musical characteristics one audio sample at a time.

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